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Implementing a structural continuity constraint and a halting method for the topology optimization of energy absorbers

机译:实现结构连续性约束和止振方法以优化吸能器的拓扑

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摘要

This study investigates topology optimization of energy absorbing structures in which material damage is accounted for in the optimization process. The optimization objective is to design the lightest structures that are able to absorb the required mechanical energy. A structural continuity constraint check is introduced that is able to detect when no feasible load path remains in the finite element model, usually as a result of large scale fracture. This assures that designs do not fail when loaded under the conditions prescribed in the design requirements. This continuity constraint check is automated and requires no intervention from the analyst once the optimization process is initiated. Consequently, the optimization algorithm proceeds towards evolving an energy absorbing structure with the minimum structural mass that is not susceptible to global structural failure. A method is also introduced to determine when the optimization process should halt. The method identifies when the optimization method has plateaued and is no longer likely to provide improved designs if continued for further iterations. This provides the designer with a rational method to determine the necessary time to run the optimization and avoid wasting computational resources on unnecessary iterations. A case study is presented to demonstrate the use of this method.
机译:本研究调查了吸能结构的拓扑优化,其中在优化过程中考虑了材料损坏。优化目标是设计能够吸收所需机械能的最轻的结构。引入了结构连续性约束检查,该检查能够检测通常由于大规模断裂而在有限元模型中何时没有可行的载荷路径。这确保了在设计要求中规定的条件下加载设计时,设计不会失败。这种连续性约束检查是自动化的,并且在启动优化过程后就不需要分析人员的干预。因此,优化算法将逐步发展具有最小结构质量且不易受整体结构故障影响的吸能结构。还介绍了一种确定优化过程何时停止的方法。该方法可以确定优化方法何时达到稳定状态,如果继续进行进一步的迭代,则不再可能提供改进的设计。这为设计人员提供了一种合理的方法来确定运行优化所需的时间,并避免在不必要的迭代上浪费计算资源。案例研究表明了该方法的使用。

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